The spectrum between substrates and inhibitors: Pinpointing the binding mode of dengue protease ligands with modulated basicity and hydrophobicity

Bioorg Med Chem. 2021 Oct 15:48:116412. doi: 10.1016/j.bmc.2021.116412. Epub 2021 Sep 17.

Abstract

Peptides can be inhibitors and substrates of proteases. The present study describes the inhibitor- vs. substrate-like properties of peptidic ligands of dengue protease which were designed to provide insight into their binding modes. Of particular interest was the localization of the cleavable peptide bond and the placement of hydrophobic elements in the binding site. The findings provide clues for the design of covalent inhibitors in which electrophilic functional groups bind to the catalytic serine, and in addition for the development of inhibitors that are less basic than the natural substrate and therefore have an improved pharmacokinetic profile. We observed a tendency of basic elements to favor a substrate-like binding mode, whereas hydrophobic elements decrease or eliminate enzymatic cleavage. This indicates a necessity to include basic elements which closely mimic the natural substrates into covalent inhibitors, posing a challenge from the chemical and pharmacokinetic perspective. However, hydrophobic elements may offer opportunities to develop non-covalent inhibitors with a favorable ADME profile and potentially improved target-binding kinetics.

Keywords: Binding properties; Flaviviral protease; Peptide inhibitors; Proteolytic cleavage; Substrates.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Chromatography, Liquid
  • Dose-Response Relationship, Drug
  • HIV / enzymology
  • Hepacivirus / enzymology
  • Hydrophobic and Hydrophilic Interactions
  • Ligands
  • Mass Spectrometry
  • Molecular Structure
  • Peptide Hydrolases / metabolism*
  • Peptides / chemical synthesis
  • Peptides / chemistry
  • Peptides / pharmacology*
  • Protease Inhibitors / chemical synthesis
  • Protease Inhibitors / chemistry
  • Protease Inhibitors / pharmacology*
  • SARS-CoV-2 / enzymology
  • Structure-Activity Relationship
  • Substrate Specificity

Substances

  • Ligands
  • Peptides
  • Protease Inhibitors
  • Peptide Hydrolases